EP3842731B1 - Dispositif de détermination de mauvais alignement - Google Patents

Dispositif de détermination de mauvais alignement Download PDF

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Publication number
EP3842731B1
EP3842731B1 EP18930657.4A EP18930657A EP3842731B1 EP 3842731 B1 EP3842731 B1 EP 3842731B1 EP 18930657 A EP18930657 A EP 18930657A EP 3842731 B1 EP3842731 B1 EP 3842731B1
Authority
EP
European Patent Office
Prior art keywords
lever member
amount
pivotal
pivot
case
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP18930657.4A
Other languages
German (de)
English (en)
Other versions
EP3842731A4 (fr
EP3842731A1 (fr
Inventor
Naoki Maegawa
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Big Daishowa Seiki Co Ltd
Big Daishowa Co Ltd
Original Assignee
Big Daishowa Seiki Co Ltd
Big Daishowa Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Big Daishowa Seiki Co Ltd, Big Daishowa Co Ltd filed Critical Big Daishowa Seiki Co Ltd
Publication of EP3842731A1 publication Critical patent/EP3842731A1/fr
Publication of EP3842731A4 publication Critical patent/EP3842731A4/fr
Application granted granted Critical
Publication of EP3842731B1 publication Critical patent/EP3842731B1/fr
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Anticipated expiration legal-status Critical

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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01BMEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
    • G01B5/00Measuring arrangements characterised by the use of mechanical techniques
    • G01B5/24Measuring arrangements characterised by the use of mechanical techniques for measuring angles or tapers; for testing the alignment of axes
    • G01B5/25Measuring arrangements characterised by the use of mechanical techniques for measuring angles or tapers; for testing the alignment of axes for testing the alignment of axes
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23QDETAILS, COMPONENTS, OR ACCESSORIES FOR MACHINE TOOLS, e.g. ARRANGEMENTS FOR COPYING OR CONTROLLING; MACHINE TOOLS IN GENERAL CHARACTERISED BY THE CONSTRUCTION OF PARTICULAR DETAILS OR COMPONENTS; COMBINATIONS OR ASSOCIATIONS OF METAL-WORKING MACHINES, NOT DIRECTED TO A PARTICULAR RESULT
    • B23Q17/00Arrangements for observing, indicating or measuring on machine tools
    • B23Q17/22Arrangements for observing, indicating or measuring on machine tools for indicating or measuring existing or desired position of tool or work
    • B23Q17/2291Arrangements for observing, indicating or measuring on machine tools for indicating or measuring existing or desired position of tool or work for adjusting the workpiece relative to the holder thereof
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23QDETAILS, COMPONENTS, OR ACCESSORIES FOR MACHINE TOOLS, e.g. ARRANGEMENTS FOR COPYING OR CONTROLLING; MACHINE TOOLS IN GENERAL CHARACTERISED BY THE CONSTRUCTION OF PARTICULAR DETAILS OR COMPONENTS; COMBINATIONS OR ASSOCIATIONS OF METAL-WORKING MACHINES, NOT DIRECTED TO A PARTICULAR RESULT
    • B23Q17/00Arrangements for observing, indicating or measuring on machine tools
    • B23Q17/22Arrangements for observing, indicating or measuring on machine tools for indicating or measuring existing or desired position of tool or work
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23QDETAILS, COMPONENTS, OR ACCESSORIES FOR MACHINE TOOLS, e.g. ARRANGEMENTS FOR COPYING OR CONTROLLING; MACHINE TOOLS IN GENERAL CHARACTERISED BY THE CONSTRUCTION OF PARTICULAR DETAILS OR COMPONENTS; COMBINATIONS OR ASSOCIATIONS OF METAL-WORKING MACHINES, NOT DIRECTED TO A PARTICULAR RESULT
    • B23Q17/00Arrangements for observing, indicating or measuring on machine tools
    • B23Q17/22Arrangements for observing, indicating or measuring on machine tools for indicating or measuring existing or desired position of tool or work
    • B23Q17/2216Arrangements for observing, indicating or measuring on machine tools for indicating or measuring existing or desired position of tool or work for adjusting the tool into its holder
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23BTURNING; BORING
    • B23B2260/00Details of constructional elements
    • B23B2260/128Sensors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23QDETAILS, COMPONENTS, OR ACCESSORIES FOR MACHINE TOOLS, e.g. ARRANGEMENTS FOR COPYING OR CONTROLLING; MACHINE TOOLS IN GENERAL CHARACTERISED BY THE CONSTRUCTION OF PARTICULAR DETAILS OR COMPONENTS; COMBINATIONS OR ASSOCIATIONS OF METAL-WORKING MACHINES, NOT DIRECTED TO A PARTICULAR RESULT
    • B23Q17/00Arrangements for observing, indicating or measuring on machine tools
    • B23Q2017/001Measurement or correction of run-out or eccentricity
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B23MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
    • B23QDETAILS, COMPONENTS, OR ACCESSORIES FOR MACHINE TOOLS, e.g. ARRANGEMENTS FOR COPYING OR CONTROLLING; MACHINE TOOLS IN GENERAL CHARACTERISED BY THE CONSTRUCTION OF PARTICULAR DETAILS OR COMPONENTS; COMBINATIONS OR ASSOCIATIONS OF METAL-WORKING MACHINES, NOT DIRECTED TO A PARTICULAR RESULT
    • B23Q3/00Devices holding, supporting, or positioning work or tools, of a kind normally removable from the machine
    • B23Q3/12Devices holding, supporting, or positioning work or tools, of a kind normally removable from the machine for securing to a spindle in general
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01BMEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
    • G01B3/00Measuring instruments characterised by the use of mechanical techniques
    • G01B3/22Feeler-pin gauges, e.g. dial gauges

Definitions

  • This disclosure relates to a misalignment determining device for use in determining misalignment of a tool holder mounting portion of a lathe or the like.
  • a misalignment determining device configured to determine a positional misalignment of the core of the center relative to the center of the chuck in the direction perpendicular to the axial direction (see PTL 1 for example).
  • a misalignment determining device described in PTL 1 includes a cylindrical case, a dial gauge, a cylindrical holder body fitted in a through hole of the case, a support body attached to the base end side of the holder body, a slider body slidable along the axial direction on the radial inner side of the holder body, and a pivotal body held to the holder body and configured to transmit a pivot amount to the slider body.
  • this misalignment determining device will be attached to the rotary base gripped by the chuck and a cup-shaped guide body will be attached in place of the center of the tailstock and then the rotary base will be rotated with keeping the slider body in contact with an inner circumferential face of the guide body, whereby the pivotal body will be rotated together with the holder body.
  • the slider body to which the pivot amount of the pivotal body placed in contact with the inner circumferential face of the guide body has been transmitted is moved in the axial direction and a radial extension portion provided on the side of the base end of the slider body comes into contact with the stylus (probe) of the dial gauge, whereby the pivot amount of the pivotal body is determined.
  • PTL 1 International Publication No. 2018/020646 A misalignment device having the features of the preamble of claim 1 is known from US 3 115 710 A .
  • GB 807 316 A discloses a plain sight attachment for a dial indicator.
  • US 3 914 869 A discloses a centering device for use with the spindle of a machine tool.
  • the misalignment determining device described in PTL 1 is configured to determine a pivot amount of the pivotal body by moving the slider body in the axial direction. So, its size in the axial direction is large. For this reason, the misalignment determining device described in PTL 1 cannot be used for a lathe or the like in which a distance between a tool holder mounting portion and a chuck is small.
  • misalignment determining device having the features of claim 1 and claim 2 respectively.
  • the misalignment determining device comprises:
  • the pivot amount of the pivotal portion is not constant and this pivot amount is transmitted to the slide member via the lever member which is rotated in synchronism with the holder portion.
  • the dial gauge detects the pivot amount. More particularly, as the pivotal portion held to the leading end side of the holder portion rotated coaxially with the axis is pivoted, the pivot amount transmitted to the lever member extending in the direction intersecting the axial direction is detected as a slide movement amount of the slide member.
  • the extending direction of the lever member to which the pivot amount of the pivotal portion is transmitted is a direction that intersects the axial direction, the size in the axial direction can be made shorter than the case of the conventional arrangement in which the attaching direction of the slider body to which the pivot amount is transmitted is aligned with the axial direction.
  • the misalignment determining device further comprises: a unit amount converter member fixed to the pivotal portion at a position between the pivotal portion and the lever member and configured to change a unit movement amount of the slide member relative to a unit pivot amount of the pivotal portion.
  • the unit movement amount of the slide member relative to the unit pivot amount of the pivotal portion becomes smaller and the amount of change of the stylus of the dial gauge relative to the pivot amount of the pivotal portion becomes smaller. If an attempt were made to increase the unit movement amount of the slide member relative to the unit pivot amount of the pivotal portion by increasing the radial size of the lever member, there would arise a risk of inviting undesirable enlargement of the misalignment determining device in the radial direction.
  • the stylus in the measurement determining device has an outer face having an arcuate cross section, and a portion of the slide member which comes into contact with the stylus has an inclined portion which is closer to the axis as it extends toward the base end side.
  • the movement amount of the slide member in the axial direction is detected by the dial gauge as a movement amount in the direction perpendicular to the axial direction. Therefore, in case e.g. a spindle type dial gauge is employed, it is possible to arrange this dial gauge in the direction perpendicular to the axial direction in the outer face of the case. Thus, there occurs no increase in the size in the axial direction due to the dial gauge. Moreover, since the outer face of the stylus has an arcuate cross section, the contact between the stylus and the inclined portion can occur smoothly, whereby increase of the service lives of the stylus and the slide member is made possible.
  • a rotary drive device 90 for rotating a chuck 91 about a spindle axis CX and at a position opposed to the rotary drive device 90 in the direction of this spindle axis CX there is provided a tool rest 94 to which a tool keeper 96 is attached. And, the rotary drive device 90 and the tool rest 94 are coupled to each other via a base 97 in the spindle axis CX direction.
  • a base end portion of a work (not shown) as an object subjected to a (lathe) turning will be gripped by the chuck 91 with the misalignment determining device 1 being removed therefrom and then this work will be fixed in the spindle axis CX direction.
  • the rotary drive device 90 will be activated, whereby the work will be rotated about the spindle axis CX and also this rotated work will be lathe-turned and cut progressively by a cutter tool (not shown) mounted to the tool keeper 96.
  • the cutter tool is held in a tool holder (not shown) fixed to a tool holder mounting portion 95 provided in the form of a hole defined in the surface of the tool keeper 96.
  • the misalignment determining device 1 of this embodiment is configured to determine misalignment of the center 95X of the tool holder mounting portion 95 relative to the spindle axis CX, prior to lathe-turning of the work.
  • the misalignment determining device 1 is attached to a disc-shaped rotary base 93 gripped to the chuck 91.
  • the spindle axis CX shown in Fig. 1 is a main (spindle) axis CX as a rotational axis for the rotary drive device 90 to rotate the chuck 91.
  • a “radial direction R" refers to the direction perpendicular to the rotational axis MX; and the direction away from the rotational axis MX along the radial direction R will be defined as a radially outer direction R1, and the direction approaching the rotational axis MX will be defined as a radially inner direction R2, respectively.
  • the misalignment determining device 1 includes a case 2, a dial gauge 3, a holder portion 4, a support portion 5, a pivotal portion 6, a lever member 7, and a slide member 8.
  • the misalignment determining device 1 further includes a unit amount converter member 9 configured to change a unit movement amount of the slide member 8 relative to a unit pivot amount of the pivotal portion 6.
  • the case 2 is formed like a cylinder having a through hole 23 extending therethrough along the rotational axis MX.
  • a stem 3a of the dial gauge 3 there is fixed, with a screw 20a, a stem 3a of the dial gauge 3 as being clamped by a fixing portion 20 which protrudes in the radially outer direction R1.
  • the dial gauge 3 of a spindle type whose pointer pivots depending on a protruding amount and a retracting amount of a stylus 32 having an outer face with an arcuate cross section.
  • the dial gauge 3 has a well-known construction arranged such that a small movement amount of the stylus 32 is displayed with enlargement by means of a gear mechanism (not shown) on an indicator 33 (an example of graduation scale portion) provided in its main body 31. Namely, the dial gauge 3 is fixed to the case 2 with its indicator 33 being exposed from the case 2 and determines a change amount of a minute distance.
  • a flange portion 2a which protrudes in the form of a circular ring in the radially inner direction R2 so as to define one opening (opening on the support portion 5 side).
  • a protruding portion 21a which protrudes in the form of a circular ring in the radially outer direction R1 in a cylindrical bearing support body 21 is fixed via a plurality of screws 24.
  • a first bearing B1 is disposed between the base end side (support portion 5 side) of the holder portion 4 and the support portion 5.
  • a second bearing B2 is arranged between this end and the holder portion 4 and a third bearing B3 is arranged between this end and the slide member 8.
  • the bearings B1, B2, B3 employed in this embodiment are constituted of a plurality of balls held by keepers.
  • the first bearing B1 and the second bearing B2 are formed in L-shape, whereas the third bearing B3 is formed linear.
  • the holder portion 4 and the support portion 5 are rendered freely rotatable relative to the bearing support body 21 which is fixed to the case 2.
  • the positions of the first bearing B1 and the second bearing B2 in the circumferential direction and the axial direction are maintained constant.
  • the slide member 8 is rendered freely movable relative to the bearing support body 21 along the rotational axis MX direction.
  • the respective bearings B1, B2, B3 should have no gaps therein.
  • the one side opening of the case 2 is closed by the support portion 5 which is not in contact with the case 2.
  • the other side opening of the case 2 is closed by a lid portion 22 which is not in contact with the case 2.
  • the lid portion 22 is formed like a cup; and as its bottom portion is fixed to the holder portion 4 with a plurality of screws 22a, the lid portion 22 is rotatable together with the holder portion 4 (see Fig. 4 and Fig. 8 ).
  • a bore portion 22b At the bottom portion of the lid portion 22, there is formed a bore portion 22b through which the pivotal portion 6 can extend pivotally.
  • the holder portion 4 is inserted in the through hole 23 of the case 2 in the radially inner direction R2 of the bearing support body 21. Specifically, the holder portion 4 is supported to the bearing support body21 which is fixed to the case 2 via the first bearing B1 and the second bearing B2. Thus, the holder portion 4 is rendered rotatable relative to the case 2 about the rotational axis MX.
  • the holder portion 4 is provided in the form of a solid cylinder which extends along the rotational axis MX and is fixed (supported) on its base end side to the support portion 5 and holds, on its leading end side (pivotal portion 6 side), the pivotal portion 6, the lever member 7 and the lid portion 22.
  • an accommodating portion 41a which accommodates the pivotal portion 6 and the lever member 7 and a fixing portions 41b which is fixed via the screws 22a to the lid portion 22 on the opposed sides of the accommodating portion 41a are connected via a flange portion 41c (see Figs. 3-4 ).
  • the accommodating portion 41a is provided in the form of an elongate groove that intersects the rotational axis MX perpendicularly and has its longitudinal direction along the attaching direction of the dial gauge 3.
  • a stopper pin 22c fixed to the fixing portion 41b protrudes and this stopper pin 22c is configured as a stopper with which a pin 9b of the unit amount converter member 9 to be described later comes into contact to restrain movement of the pivotal portion 6 in a radially outer direction R1.
  • a fixing weight 25 is attached to the case 2 in such a manner as to protrude in the radially outer direction R1 (see Fig. 2 and Figs. 5-9 ).
  • the fixing weight 25 can be mounted to either one of attaching holes 25a formed at two portions in the lateral face of the case 2. More particularly, a female thread is formed in the inner circumference of the attaching hole 25a, whereas a male thread is formed at an attaching portion of the fixing weight 25 to the attaching hole 25a. Therefore, with screw (threading) engagement between the fixing weight 25 and the respective attaching holes 25a, the fixing weight 25 is attached to the case 2.
  • the fixing weight 25 Since the fixing weight 25 is formed heavy, if the misalignment determining device 1 is operated with the fixing weight 25 being attached thereto, due to the weight of the fixing weight 25, the case 2 will rotate about the rotational axis MX, and the case 2 will be fixed with the fixing weight 25 being located perpendicularly downwards. Therefore, when the fixing weight 25 is located perpendicularly downwards due to its own weight, the indicator 33 will be oriented in a direction slightly inclined toward the fixing weight 25 from its frontal orientation, thereby to make it easier for a user to check the indicator 33 from the lateral side of the misalignment determining device 1.
  • a pair of such attaching holes 25a are provided at positions in line symmetry relative to the vertical line extending through the rotational axis MX as seen in the spindle axis CX direction (see Fig. 7 ).
  • either one attaching hole 25a will be chosen depending on the standing position of the user and then the fixing weight 25 will be attached thereto.
  • the indicator 33 of the dial gauge 3 it is possible to orient the indicator 33 of the dial gauge 3 to face the user.
  • the support portion 5 includes an attaching portion 51 to be attached to the rotary base 93 and an adjustment portion 52 for adjusting the inclination of the misalignment determining device 1 relative to the rotational axis MX direction.
  • the attaching portion 51 of the support portion 5 there are formed a plurality of magnet holes 57. Then, via magnets (not shown) pressed in or magnetically attached to these magnet holes 57, the support portion 5 is attached to the rotary base 93 (see Fig. 9 ).
  • the attaching portion 51 and the adjustment portion 52 there are formed a plurality of attaching holes 51a for fixing the support portion 5 to the holder portion 4.
  • the support portion 5 is fixed to the holder portion 4 to be rotatable in unison with this holder portion 4.
  • the adjustment portion 52 includes an adjustment slit 53 cut out along the direction perpendicular to the rotational axis MX direction and an adjustment pressing portion 54 configured to press one of opposed faces of the adjustment slit 53 which face is closer to the holder portion 4, thereby to open the adjustment slit 53.
  • the adjustment slit 53 includes an enlarged portion 53b which is formed wide at a position away from the rotational axis MX in the radially outer direction R1.
  • the enlarged portion 53b is formed at one end portion of the adjustment slit 53 in the radial direction R.
  • the other end portion of the adjustment slit 53 in the radial direction R is communicated with the outside of the support portion 5 in the radially outer direction R1.
  • the adjustment pressing portion 54 is constituted of a tapered pressing face 54a that extends away from the rotational axis MX in the radially outer direction R1.
  • the adjustment pressing portion 54 is disposed at a position opposite the enlarged portion 53b of the adjustment slit 53 across the rotational axis MX.
  • an adjustment handle 55 that extends through the support portion 5 in the radially outer direction R1 and that also has, at its leading end, a ball 55a which comes into contact with the adjustment pressing portion 54.
  • the adjustment handle 55 has a male screw which can be screwed (threaded) with a female screw formed in the support portion 5.
  • the ball 55a comes into contact with the adjustment pressing portion 54 constituted of the tapered pressing face 54a, so that the adjustment slit 53 will be progressively opened or widened in the rotational axis MX direction and the support portion 5 will be progressively inclined away from the holder portion 4, with the enlarged portion 53b of the adjustment slit 53 acting as the "fulcrum".
  • the inclination of the misalignment determining device 1 as a whole can be finely adjusted in accordance with a screwing-in amount of the adjustment handle 55.
  • the pivotal portion 6 is attached eccentrically relative to the rotational axis MX and extends along the rotational axis MX direction such that the pivotal portion 6 carries, at its leading end, a determining portion 61 which pivots about an eccentric axis HX parallel with the rotational axis MX and is held to the leading end portion 41 of the holder portion 4 via the unit amount converter member 9.
  • the pivotal portion 6 includes the determining portion 61 which is formed spherical and configured to come into contact with a determination target and a transmission portion 62 which transmits a pivot amount of the determining portion 61. Apart of the transmission portion 62 is engaged with the unit amount converter member 9, so that the pivot amount transmitted from the transmission portion 62 may be transmitted directly to the unit amount converter member 9.
  • the unit amount converter member 9 is pivotally supported by a pivot shaft 63 fixed to the leading end portion 41 of the holder portion 4.
  • the pivot shaft 63 extends through the fixing portion 41b of the holder portion 4 and has its leading end 63a inserted in the unit amount converter member 9 (see Fig.4 ). Further, a leading end 63a of the pivot shaft 63 is formed conical and this leading end 63a is supported to a bearing 9a provided in the unit amount converter member 9. Namely, the unit amount converter member 9 to which the pivot amount has been transmitted from the transmission portion 62 of the pivotal portion 6 can be pivoted relative to the holder portion 4 about the pivot shaft 63 via a pivot bearing constituted of the pivot shaft 63 and the bearing 9a.
  • the unit amount converter member 9 includes a pin 9b which comes into contact with a slide pin 72 of the lever member 7 which will be described later.
  • This pin 9b protrudes in the direction which intersects the rotational axis MX direction and in the attaching direction of the dial gauge 3 (see Fig. 3 ).
  • the unit amount converter member 9 With a pivotal movement of the pivotal portion 6, the unit amount converter member 9 is pivoted about the pivot shaft 63 and the pin 9b comes into contact with the slide pin 72 to be described later, whereby the pivot amount of the pivotal portion 6 is transmitted to the lever member 7.
  • the point of contact of the determining portion 61 of the pivotal portion 6 relative to the determination target acts as the force point and the point of first contact (first contact point) between the pin 9b and the slide pin 72 acts as the action point, and the unit amount converter member 9 pivots about the pivot shaft 63 acting as the fulcrum. Therefore, the pivot amount of the pivotal portion 6 will be transmitted to the lever member 7 in proportion with the ratio: (distance between first contact point and pivot shaft 63) / (distance between contact portion of determining portion 61 of pivotal portion 6 and pivot shaft 63).
  • the lever member 7 extends in the intersecting direction intersecting the rotational axis MX and in the attaching direction of the dial gauge 3, at a position closer to the base end side (support portion 5 side) than the pivotal portion 6 and the lever member 7 is held in the holder portion 4 as being accommodated in the accommodating portion 41a.
  • the lever member 7 is pivotable relative to the holder portion 4 about a pivot shaft 71 via a pivot bearing constituted of this pivot shaft 71 (an example of pivot axis) and a bearing (not shown), like the unit amount converter member 9.
  • This pivot shaft 71 is parallel with the pivot shaft 63 of the unit amount converter member 9 and extends at right angles with the rotational axis MX direction and with the extending direction of the lever member 7.
  • a slide pin 72 that is arranged along the support shaft 71.
  • a spherical ball portion 73 is fixed in the direction along the rotational axis MX direction. As this ball portion 73 comes into contact with the slide member 8, the pivot amount of the pivotal portion 6 is transmitted to the slide member 8 via the unit amount converter member 9 and the lever member 7.
  • the point of first contact (first contact point) between the pin 9b and the slide pin 72 acts as the force point and the point of second contact (second contact point) between the ball portion 73 and the slide member 8 acts as the action point, and the lever member 7 pivots about the pivot shaft 71 acting as the fulcrum.
  • the pivot amount of the lever member 7 is transmitted to the slide member 8 in proportion to the ratio: (distance between second contact point and pivot shaft 71) / (distance between first contact point and pivot shaft 71).
  • the pivot amount of the pivotal portion 6 can be converted into an appropriate movement amount of the slide member 8 and transmitted as such, without increasing the size of the lever member 7.
  • the slide member 8 is formed cylindrical and is accommodated within the through hole 23 of the case 2 at a position on more base end side (support portion 5 side) than the lever member 7. More particularly, the slide member 8 is supported via the third bearing B3 in the radially outer direction R1 of the bearing support body 21 described above and is configured to be movable along the rotational axis MX direction.
  • a spherical member 8a is embedded, so that this spherical member 8a can slide or roll along a guide groove 2b formed in the opening at the leading end side (pivotal portion 6 side) of the case 2. As this spherical member 8a slides or rolls along the guide groove 2b, the slide member 8 slides along the rotational axis MX direction without rotating relieve to the case 2.
  • a contact portion 8b having a contact face with which the ball portion 73 of the lever member 7 comes into contact along the rotational axis MX direction.
  • a contact portion 8c is provided, along the circumferential direction, an inclined portion 8c with which a stylus 32 of the dial gauge 3 comes into contact and which extends closer to the rotational axis MX as it extends toward the base end side (support portion 5 side) of the holder portion 4.
  • the dial gauge 3 will detect the movement amount of the slide member 8 in the rotational axis MX direction as a movement amount in the direction perpendicular to the rotational axis MX direction. Therefore, in the case of using a spindle type dial gauge 3 as employed in the instant embodiment, it becomes possible to dispose the dial gauge 3 in the direction perpendicular to the rotational axis MX direction in the outer face of the case 2. Consequently, there occurs no increase in the size in the rotational axis MX direction due to the dial gauge 3.
  • the outer face of the stylus 32 of the dial gauge 3 is formed arcuate in its cross section, the contact between the stylus 32 and the inclined portion 8c can take place smoothly, so that increase of the service lives of the stylus 32 and the slide member 8 can be achieved.
  • misalignment determining device 1 As shown in Fig. 3 , firstly, in the inner circumference of the tool holder mounting portion 95, there is formed a guide face 95b having a circular cross section, with which the determining portion 61 of the pivotal portion 6 comes into contact. The misalignment determining device 1 will be attached to the rotary base 93. Then, as shown in Fig. 10 , the tool rest 94 will be moved along the spindle axis CX direction to a position where the determining portion 61 of the pivotal portion 6 comes into contact with the guide face 95b.
  • the attaching position of the misalignment determining device 1 relative to the rotary base 93 will be adjusted and finally with screwing-in of the adjustment handle 55, the misalignment determining device 1 as a whole will be inclined for making a fine adjustment.
  • the rotary drive device 90 by driving the rotary drive device 90 with aligning the determining portion 61 of the pivotal portion 6 with the guide face 95b, the support portion 5, the holder portion 4, the lever member 7, the unit amount converter member 9 and the pivotal portion 6 will be rotated together for determining misalignment of the tool holder mounting portion 95.
  • the misalignment determining device 1 When the rotary drive device 90 is rotatably driven, in association with rotation of the rotary base 93, the misalignment determining device 1 will revolve about the spindle axis CX along the second circumferential direction C2 and will also spin about the rotational axis MX along the first circumferential direction C1.
  • the support portion 5, the holder portion 4, the lever member 7, the unit amount converter member 9 and the pivotal portion 6 will rotate together with the rotary base 93 about the rotational axis MX.
  • the pivotal portion 6 becomes a revolution trajectory of the eccentric axis HX which is located more in the radially outer direction R1 than a revolution trajectory of the rotational axis MX.
  • the center 95X of the tool holder mounting portion 95 is not in agreement with the spindle axis CX, there will be presented such a condition as shown in Fig. 11 for instance.
  • the one-dot chain line represents the revolution trajectory of the rotational axis MX
  • the two-dot chain line represents the revolution trajectory of the eccentric axis HX.
  • the broken line circle represents the determining portion 61 of the pivotal portion 6 under the condition not in contact with the guide face 95b of the tool holder mounting portion 95 (free rotation condition).
  • the solid line circle represents the determining portion 61 of the pivotal portion 6 under the condition in contact with the guide portion 95b of the tool holder mounting portion 95.
  • an amount of turn of the determining portion 61 obstructed by the guide face 95b of the tool holder mounting portion 95 will differ, depending on the circumferential location.
  • the pivot amount of the pivotal portion 6 agrees to a movement amount of moving from the determining portion 61 indicted by the broken line to the determining portion 61 indicated by the solid line, the pivot amount shown on the upper side in the illustration being greater than the pivot amount shown on the lower side in the illustration. This change of pivot amount will be transmitted to the determining portion 61 in association with turning of the determining portion 61.
  • the pivot amount will be transmitted via the transmission portion 62 to the unit amount converter member 9, so that the unit amount converter member 9 will be pivoted about the pivot shaft 63 and the pin 9B will move along the rotational axis MX direction. And, this pivot amount of the unit amount converter member 9 will be transmitted to the slide pin 72 of the lever member 7 placed in contact with the pin 9b and the lever member 7 will pivot about the pivot shaft 71 and the ball portion 73 will move along the rotational axis MX direction.
  • the misalignment determining device 1 can determine misalignment between the center 95X of the tool holder mounting portion 95 and the spindle axis CX in case the detection value of the dial gauge 3 is not constant and can determine absence of misalignment between the center 95X of the tool holder mounting portion 95 and the spindle axis CX in case the detection value of the dial gauge 3 becomes constant. With this, the reference point (alignment) of the center 95X of the tool holder mounting portion 95 is made accurate.
  • the pivot amount of the determining portion 61 of the pivotal portion 6 becomes not constant, and this pivot amount is transmitted to the slide member 8 via the lever member 7 which rotates in synchronism with the holder portion 4.
  • the dial gauge 3 detects the pivot amount. Namely, the arrangement is such that the pivotal portion 6 held to the leading end side of the holder portion 4 rotated about the rotational axis MX is pivoted and its pivot amount transmitted to the lever member 7 extending in the direction intersecting the rotational axis MX direction is detected as a movement amount of the slide member 8.
  • the misalignment determining device 1 can be used even for a lathe in which the distance between the tool keeper 96 (tool holder mounting portions 95) and the chuck 91 is limited.
  • the unit amount converter member 9 used in the foregoing embodiment may be omitted.
  • a part of the transmission portion 62 of the pivotal portion 6 is directly engaged with the lever member 7.
  • the point of contact of the determining portion 61 of the pivotal portion 6 with a determination target acts as the force point and the point of contact between the ball portion 73 and the slide member 8 acts as the action point and the lever member 7 pivots about the pivot shaft 71 acting as the fulcrum.
  • the size in the rotational axis MX direction can be made further shorter.
  • the size of the lid portion 22 is shorter in the rotational axis MX direction, in comparison with the front view illustration of Fig. 2 relating to the foregoing embodiment.
  • the inclined portion 8c of the slide member 8 in the foregoing embodiment may be omitted and may be constituted of a slide member 8A having a rectangular cross section.
  • a lever type dial gauge 3A capable of detecting a movement amount of the slide member 8 in the rotational axis MX direction.
  • the present invention is applicable to a misalignment determining device for determining misalignment of a center of a lathe, a cylindrical grinder, etc.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • A Measuring Device Byusing Mechanical Method (AREA)
  • Length Measuring Devices With Unspecified Measuring Means (AREA)
  • Machine Tool Sensing Apparatuses (AREA)
  • Turning (AREA)

Claims (2)

  1. Dispositif de détermination de mauvais alignement (1) comprenant :
    un boîtier tubulaire (2) ayant un trou débouchant (23) s'étendant le long d'un axe ;
    un comparateur à cadran (3) fixé sur le boîtier avec sa partie d'échelle de graduation exposée à partir du boîtier et configurée pour déterminer une quantité de changement de distance ;
    une partie de maintien (4) insérée dans le trou débouchant et pouvant tourner par rapport au boîtier de manière coaxiale avec l'axe ;
    une partie de support (5) qui supporte la partie de maintien sur un côté d'extrémité de base de la partie de maintien ;
    une partie pivotante (6) pouvant pivoter lorsqu'elle est maintenue sur un côté d'extrémité d'attaque de la partie de maintien ;
    un élément de levier (7) s'étendant le long d'une direction d'intersection coupant la direction axiale dans une position qui est du côté d'extrémité d'attaque et qui est également du côté plus proche du côté d'extrémité de base que ne l'est la partie pivotante, l'élément de levier étant maintenu sur la partie de maintien afin de pouvoir pivoter autour d'un axe de pivot (71) qui est dans une direction perpendiculaire à la fois à la direction axiale et à la direction d'intersection, une quantité de pivot de la partie pivotante étant transmise à l'élément de levier ; et
    un élément coulissant (8) logé dans le boîtier dans une position davantage du côté d'extrémité de base que l'élément de levier et configuré pour venir en contact avec l'élément de levier pour être mobile le long de la direction axiale ;
    dans lequel l'élément coulissant est placé en contact avec un stylet (32) du comparateur à cadran ; et
    lorsque la partie pivotante et l'élément de levier sont entraînés en rotation en synchronisation avec la rotation de la partie de maintien, une quantité de pivot de la partie pivotante est transmise à l'élément coulissant via l'élément de levier ; et sur la base d'une quantité de mouvement de l'élément coulissant le long de la direction axiale, le comparateur à cadran détermine la quantité de pivot ; caractérisé en ce que le dispositif de détermination de mauvais alignement comprend en outre :
    un élément convertisseur de quantité unitaire (9) fixé sur la partie pivotante dans une position entre la partie pivotante et l'élément de levier et configuré pour modifier une quantité de mouvement unitaire de l'élément coulissant par rapport à une quantité de pivot unitaire de la partie pivotante.
  2. Dispositif de détermination de mauvais alignement comprenant :
    un boîtier tubulaire (2) ayant un trou débouchant (23) s'étendant le long d'un axe ;
    un comparateur à cadran (3) fixé sur le boîtier avec sa partie d'échelle de graduation exposée à partir du boîtier et configurée pour déterminer une quantité de changement de distance ;
    une partie de maintien (4) insérée dans le trou débouchant et pouvant tourner par rapport au boîtier de manière coaxiale avec l'axe ;
    une partie de support (5) qui supporte la partie de maintien sur un côté d'extrémité de base de la partie de maintien ;
    une partie pivotante (6) pouvant pivoter lorsqu'elle est maintenue sur un côté d'extrémité d'attaque de la partie de maintien ;
    un élément de levier (7) s'étendant le long d'une direction d'intersection coupant la direction axiale dans une position qui est du côté d'extrémité d'attaque et qui est également du côté plus proche du côté d'extrémité de base que ne l'est la partie pivotante, l'élément de levier étant maintenu sur la partie de maintien afin de pouvoir pivoter autour d'un axe de pivot (71) qui est dans une direction perpendiculaire à la fois à la direction axiale et à la direction d'intersection, une quantité de pivot de la partie pivotante étant transmise à l'élément de levier ; et
    un élément coulissant (8) logé dans le boîtier dans une position davantage du côté d'extrémité de base que l'élément de levier et configuré pour venir en contact avec l'élément de levier pour être mobile le long de la direction axiale ;
    dans lequel l'élément coulissant est placé en contact avec un stylet (32) du comparateur à cadran ; et
    lorsque la partie pivotante et l'élément de levier sont entraînés en rotation en synchronisation avec la rotation de la partie de maintien, une quantité de pivot de la partie pivotante est transmise à l'élément coulissant via l'élément de levier ; et sur la base d'une quantité de mouvement de l'élément coulissant le long de la direction axiale, le comparateur à cadran détermine la quantité de pivot ;
    caractérisé en ce que le stylet (32) a une surface externe ayant une section transversale arquée ; et
    une partie de l'élément coulissant qui vient en contact avec le stylet (32) a une partie inclinée (8c) qui est plus proche de l'axe lorsqu'elle s'étend vers le côté d'extrémité de base.
EP18930657.4A 2018-08-23 2018-08-23 Dispositif de détermination de mauvais alignement Active EP3842731B1 (fr)

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PCT/JP2018/031137 WO2020039539A1 (fr) 2018-08-23 2018-08-23 Dispositif de mesure de mauvais alignement

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CN112119279B (zh) 2022-07-19
CN112119279A (zh) 2020-12-22
KR20200131324A (ko) 2020-11-23
TW202014662A (zh) 2020-04-16
TWI808240B (zh) 2023-07-11
US20210254956A1 (en) 2021-08-19
KR102409686B1 (ko) 2022-06-16
EP3842731A4 (fr) 2022-04-06
JP7116963B2 (ja) 2022-08-12
US11255654B2 (en) 2022-02-22
WO2020039539A1 (fr) 2020-02-27
JPWO2020039539A1 (ja) 2021-09-24
EP3842731A1 (fr) 2021-06-30

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